An apparatus is provided to retain elements of the spine or pelvis or both in a desired spatial relationship. A plurality of fasteners are connected with a plurality of the elements. A longitudinal member is connected with that fasteners by a plurality of connector members. The longitudinal members and fasteners are movable relative to each other to adjust the distance between the longitudinal member and fasteners to thereby obtain the desired spatial relationship. Clamps are engaged to hold the longitudinal member, fasteners, and connector members against relative movement. To provide for adjustability, oblong openings are formed in the connector members. The fasteners have a plurality of tapered washers to create variable angles between the axis of the fastener and the axis of the oblong opening.

Patent
   5312404
Priority
Jul 24 1990
Filed
Feb 20 1992
Issued
May 17 1994
Expiry
May 17 2011
Assg.orig
Entity
Large
395
3
all paid
3. An apparatus for use in retaining spinal elements in a desired spatial relationship, said apparatus comprising:
a fastener having a threaded end portion for engaging a spinal element;
a longitudinal member positionable along the spinal column;
a connector member for interconnecting said fastener and said longitudinal member, said connector member including a mounting section with surface means for defining an oblong opening through which said fastener extends, the oblong opening enabling the distance between said fastener and said longitudinal member to be varied; and
a pair of identical washers through which said fastener extends, said washers engaging on opposite sides of said mounting section, each of said washers having a first side surface and a second side surface extending at an angle to said first side surface.
1. An apparatus for use in retaining spinal elements in a desired spatial relationship, said apparatus comprising a fastener having a first end portion with thread means for engaging a spinal element and a second end portion, a longitudinal member which is positionable along the spinal column, and connector means for interconnecting said longitudinal member and said fastener, said connector means including a connector member having first surface means for defining a first opening through which said longitudinal member extends, said first opening having a central axis which extends along at least a portion of said longitudinal member, first clamp means for holding said longitudinal member and connector member against movement relative to each other, said connector member having second surface means for defining an oblong second opening through which said second end portion of said fastener extends, said oblong second opening having a longitudinal axis extending perpendicular to the central axis of said first opening, said connector member being movable relative to said fastener through a range of movement along the longitudinal axis of said oblong second opening, means for positioning said fastener with the axis of said fastener at an angle to the longitudinal axis of said oblong second opening, and second clamp means for holding said fastener and connector member against movement relative to each other.
2. An apparatus as set forth in claim 1 wherein said means for positioning said fastener with the axis of said fastener at an angle to the axis of said second oblong opening includes a pair of identical washers through which said fastener extends, each of said washers including a first side surface and second side surface extending at an angle to said first side surface.
4. An apparatus as set forth in claim 3 wherein the opening in said mounting section tapers from one side of said mounting section to the other side of said mounting section.
5. An apparatus as set forth in claim 3 further including a nut engageable with said fastener to clamp said washers and said fastener to said connector member.

This application is a continuation-in-part of application Ser. No. 07/557,587, filed Jul. 24 1990, now U.S. Pat. No. 5,129,900 entitled "Spinal Column Retaining Method and Apparatus", which is assigned to the assignee of the present application.

The present invention relates to a method and apparatus which is used to retain spinal and/or pelvic elements, such as vertebrae for example, in a desired spatial relationship.

A known apparatus for retaining vertebrae in a desired spatial relationship is disclosed in U.S. Pat. No. 4,648,388. The apparatus includes a plurality of threaded fasteners which are connected with vertebrae of a human spinal column. Retaining rods are bent to a configuration which is a function of the desired spatial relationship between vertebrae of the spinal column. After a rod has been bent to the desired configuration, it is inserted into clamps connected with the fasteners. The clamps are then engaged to hold the vertebrae against movement relative to the rod. Other known apparatus for retaining vertebrae in a desired spatial relationship are disclosed in U.S. Pat. Nos. 4,611,581; 4,655,199; and 4,887,595.

With this known apparatus, once the threaded fasteners or bone screws have been connected with the vertebrae, it is difficult to adjust the position of a retaining rod relative to the fasteners. This is because once the fasteners or bone screws have been connected with the vertebrae, each of the fasteners remains stationary relative to the vertebra with which it is connected. The clamps which interconnect the retainer rod and the fasteners cannot be adjusted to change the spatial relationship between the fasteners and the retainer rod.

The present invention provides a new and improved apparatus and method for us in retaining spinal and/or pelvic elements, such as vertebrae, in a desired spatial relationship. The apparatus includes a fastener having a threaded end portion which engages an element, such as a vertebra, in the spinal column. A connector assembly interconnects the fastener and a longitudinal member, such as a rod, which extends substantially parallel to the axis of the spine. The connector assembly is adjustable to enable the distance between the longitudinal member and the fastener to be varied while the fastener remains stationary relative to the element, such as a vertebra to which it is connected.

To accommodate the adjustment between the longitudinal member and fastener, an oblong opening is formed in a connector member which interconnects the longitudinal member and fastener. Thus, after the connector member has been placed in engagement with both the longitudinal member and the fastener, the longitudinal member and fastener can be moved relative to each other while the connector member is maintained in engagement with both the longitudinal member and the fastener. In one specific embodiment of the invention, the oblong opening which accommodates temporary relative movement between the longitudinal member and fastener is engaged by the fastener. Therefore, the connector member and longitudinal member can be moved together relative to the fastener. If desired, to obtain the optimal surgical correction of the spine in all three planes, the positions of the vertebrae can be readily adjusted relative to each other by rotating the longitudinal member relative to the connector members with some of the connector members disposed in relatively loose engagement with the longitudinal member and fasteners and one or more connector members in relatively tight engagement with a fastener or fasteners. This makes it possible for example to vary or change both the radius and the apex of a coronal plane spine curve, which is by definition abnormal, as the curve is being transposed into a normal sagittal plane curve. After the adjustment, the fasteners are tightened to prevent relative movement of the longitudinal member and the fasteners.

In another embodiment of the present invention the oblong opening tapers from one side of the connector member to the other side of the connector member. A pair of identical tapered washers engage on opposite sides of the connector member. Each of the washers has a first side surface and a second side surface extending at an angle to the first side surface. The tapered opening and the tapered washers enable the fastener to be positioned with the axis of the fastener at an angle to the longitudinal axis of the oblong opening. The angle between the axis of the fastener and the longitudinal axis of the oblong opening can be changed by replacing the washers with washers that taper at a different angle.

The foregoing and other features of the invention will become more apparent upon a consideration of the following description taken in connection with the accompany drawings, wherein:

FIG. 1 is a dorsal view of a portion of a spinal column with retainer assemblies constructed and installed in accordance with the present invention to maintain a desired spatial relationship between vertebrae of the spinal column;

FIG. 2 is a sagittal view of the spinal column of FIG. 1, further illustrating the manner in which vertebrae of the spinal column are held in the desired spatial relationship;

FIG. 3 is a sectional view, taken generally along the line 3--3 of FIG. 1, illustrating the manner in which fasteners are used to connect the retainer assemblies with a vertebra;

FIG. 4 is an enlarged pictorial illustration of a connector member used in a retainer assembly of FIG. 3;

FIG. 5 is an enlarged sectional view illustrating the manner in which the connector member interconnects a retainer rod and a fastener when the distance between the retainer rod and fastener is relatively large;

FIG. 6 is a fragmentary sectional view, generally similar to FIG. 5, illustrating the manner in which a connector member interconnects the retainer rod and fastener when the distance between the retainer rod and fastener is relatively small;

FIG. 7 is an enlarged pictorial illustration of a second embodiment of a connector member;

FIG. 8 is an enlarged sectional view illustrating the manner in which a fastener can be positioned relative to the connector member of FIG. 7; and

FIG. 9 is an enlarged sectional view illustrating another manner in which a fastener can be positioned relative to the connector member of FIG. 7.

PAC General Description

A human spinal column 10 to which a pair of retainer assemblies 12 and 14 are connected is illustrated in FIGS. 1 and 2. The retainer assemblies 12 and 14 retain portions of the spinal column, that is vertebrae 16, in a desired spatial relationship relative to each other.

The retainer assemblies 12 and 14 have the same construction and include fasteners 20 (FIG. 3) made of a biocompatible material, such as stainless steel. The fasteners 20 have threaded inner end portions 22 which engage the vertebrae 16 to fixedly mount the fasteners in the vertebrae. Although only a pair of fasteners 20 have been shown in FIG. 3, it should be understood that there are usually more than that and in FIGS. 1 and 2 four pairs of fasteners 20 connected with four adjacent vertebrae 16 of the spinal column 10 are shown.

Each of the retainer assemblies 12 and 14 includes a longitudinal member such as the depicted cylindrical rod 26 which extends along the spinal column. The rod is made of a biocompatible material such as stainless steel. Each of the rods 26 has a length which is at least sufficient to enable the rod to span at least two of the vertebrae 16. In the embodiment of the invention illustrated in FIGS. 1 and 2, the rods 26 span six vertebrae 16. Of course, the length of the rods in any particular installation will depend upon the condition to be corrected and the number of vertebrae 16 to be held in a desired spatial relationship relative to each other by the retainer assemblies 12 and 14. The rods 26 are bent to conform to a desired curvature of the spinal column 10 in all or any of the three possible anatomic planes.

Connector assemblies 30 interconnect the rods 26 and the fasteners 20 (FIG. 3). Each of the connector assemblies 30 includes a connector member 32 (FIGS. 3 and 4). Each of the connector members 32 is provided with a first opening 36 through which the rod 26 extends. Each of the connector members 32 has a second opening 38 through which an outer end portion 40 of the fastener 22 extends.

Rod clamps 44 (FIG. 3) hold the rods 26 against movement relative to the connector members 32. The rod clamps 44 include set screws 46. The set screws 46 engage internally threaded openings 48 (FIG. 4) in the connector members 32.

Mounting clamps 50 (FIG. 3) hold the connector members 32 against movement relative to the fasteners 20. The mounting clamps 50 include clamp nuts 52 which engage relatively fine threads on the outer end portions 40 of the fasteners 20. Lock nuts 54 hold the clamp nuts 52 in place on the fasteners 20. The lock nuts 54 may be omitted if desired.

In accordance with one of the features of the invention, the distance between the rods 26 and the fasteners 20 can be varied while the rods 26 and fasteners are connected with the connector members 32 and while the fasteners remain stationary relative to the vertebrae 16. This enables the position of each of the rods 26 to be adjusted relative to each of the fasteners 20 after the fastener has been mounted in a vertebra. Therefore, compensation can be made for a slight misalignment of one or more of the fasteners 20 relative to a vertebra. In addition, the ability to adjust the distance between the fasteners 20 and the rods 26 enables one or more of the vertebrae to be moved relative to the adjacent vertebrae to obtain a desired spatial relationship between the vertebrae.

To enable temporary relative movement to occur between the rods 26 and fasteners 20, the openings 38 in the connector members 32 have an oblong configuration (FIG. 4). Therefore, a vertebra 16 (FIG. 3) engaged by a fastener 20 can be moved either toward or away from a rod 26 which is being held substantially stationary. Similarly, a rod 26 can be moved either toward or away from a fastener 20 which is being held stationary. Of course, the rod 26 and fastener 20 could both be moved relative to each other to obtain the desired spatial relationship. Once the desired spatial relationship has been obtained, the rod clamp 44 and mounting clamp 50 are tightened to hold the rod 26 and fastener 20 against movement relative to each other.

In the illustrated embodiment of the invention, the fastener 20 extends through an oblong opening 38 in the connector member 32. This enables relative movement to occur between the fastener 20 and connector member 32 as the rod 26 and fastener are moved relative to each other.

The fastener 20 is formed from biocompatible material. The inner end portion 22 (FIG. 3) of the fastener 20 has a coarse helical thread convolution 58 which engages the bone of a vertebra 16. In one specific embodiment of the invention, the coarse thread convolution 58 is a buttress-type thread with an outside diameter of approximately 0.25 inches and a pitch of ten threads per inch. The outside diameter and the length of the threaded portion which engages the bone of vertebrae 16 may vary to safely accommodate the biological variability between vertebrae 16 of different individuals.

The outer end portion 40 of the one piece fastener 20 is provided with a relatively fine thread which engages an internal thread convolution on the clamp nut 52. In one specific embodiment of the invention, the outer end portion 40 had an outside diameter of approximately 0.19 inches. Wrenching flats (not shown) are provided on the outermost end of the outer end portion 40 of the fastener 20. Torque is applied to these wrenching flats to turn the relatively coarse helical thread convolution 58 into the bone of a vertebra 16. Once the fastener 20 has been connected with the vertebra and the rod 26 and fastener clamped in the desired spatial relationship, the outermost end portion of the fastener is cut away to minimize the overall length of the fastener. Of course, if desired, the outwardly projecting portion of the fastener could be left in place along with the wrenching flats for adjustment or removal purposes.

An enlarged intermediate portion 62 is provided between inner end portion 22 and outer end portion 40 of the fastener 20. The intermediate portion 62 is provided with wrenching flats which can be engaged to hold the fastener 20 against rotation when the clamp nut 52 is tightened. In addition, the intermediate portion 62 of the fastener has a flat outer side surface which abuttingly engages the connector member 32. When the clamp nut 52 is tightened, the connector member is securely gripped between the clamp nut and the enlarged intermediate portion of the fastener 20.

Although it is contemplated that the fastener 20 could have many different constructions, it is preferred to construct the fastener 20 in accordance with U.S. Pat. No. 4,854,311, issued Aug. 8, 1989 and entitled "Bone Screw". Thus, the fastener 20 has the same construction and cooperates with a vertebra 16 in the same manner as disclosed in the aforementioned U.S. patent.

The connector member 32 (FIG. 4) is formed from one piece of biocompatible material, such as stainless steel. The connector member 32 has a generally rectangular mounting section 66 which engages a fastener 20. In addition, the connector member 32 has a rectangular block section 68 which is integrally formed with the mounting section 66 and projects from the mounting section. The block section 68 engages a rod 26.

The oblong opening 38 is formed in the mounting section 66. The oblong opening 38 has a length, indicated by the arrow 72 in FIG. 4, which is sufficient to enable the connector member 32 to be moved through a substantial distance relative to the fastener 20. In one specific embodiment of the invention, the length 72 of the opening 38 was twice as great as the diameter of the outer end portion 40 of the fastener 20. In this particular embodiment of the invention, the length 72 of the opening exceeded the diameter of the outer end portion 40 of the fastener 20 by amount sufficient to enable the connector member 32 to be moved through a range of distance relative to the fastener 20 which was greater than one-half of the diameter or thickness of the rod 26. Thus, the length 72 of the opening 38 exceeds the sum of the diameter of the outer end portion 40 of the fastener 20 plus one-half of the diameter of the rod 26.

In this specific embodiment of the invention, the oblong opening 38 had a length 72 of 0.375 inches, the outer end portion 40 of the fastener had a diameter of 0.19 inches and the rod 26 had a diameter of 0.25 inches. In this embodiment of the invention, the length 72 of the opening 38 exceeds the sum of the outside diameter of the outer end portion 40 of the fastener 20 (0.19 inches) plus one-half of the diameter of the rod 26 (0.125 inches) by 0.065 inches. It should be understood that the foregoing specific dimensions for the slot 38, outer end portion 40 of the fastener 20, and rod 26 have been set forth herein merely for purposes of clarity of illustration. It is contemplated that the outer end portion 40 of the fastener 20, the oblong opening 38 and/or the rod 26 will be constructed with different dimensions in different embodiments of the invention. Further, the distance from the rectangular block section 68 and the oblong opening 38 may be varied. Also, the width of such an extended portion between the rectangular mounting section 66 and the rectangular block section 68 may be different than either the rectangular mounting section 66 or the rectangular block section 68.

The rectangular block section 68 (FIG. 4) of the connector member 32 projects outwardly from the mounting section 66 and receives the rod 26. Thus, the block section 68 is provided with an opening 36 through which the rod extends. The opening 36 in the mounting section 68 could be provided with a generally circular configuration if desired. However, in the embodiment of the invention illustrated herein, the opening 36 has a generally oval configuration.

The opening 36 includes a relatively large radius outer portion 76 and a relatively small radius inner portion 78. The large radius outer portion 76 has a radius which exceeds the radius of the rod 26. This enables the connector member 32 to be freely moved axially along the rod 26 to enable the connector member 32 to be accurately located relative to the fastener 20. The small radius section 78 of the generally oval opening 36 has a radius which is preferably slightly less than the radius of the rod 26. Therefore, when the clamp screw 46 is tightened to press the rod 26 into the inner portion 78 of the opening 36, in the manner shown in FIG. 3, the rod 26 is firmly and accurately gripped between the clamp screw 46 and the connector member 32.

In one specific embodiment of the invention, a relatively large upper portion 76 has a radius, indicated by the arrow 82 in FIG. 4, of approximately 0.115 inches or a diameter of 0.23 inches. The inner portion 78 of the opening 36 has a radius, indicated by the arrow 84 in FIG. 4, of approximately 0.099 inches or a diameter of 0.188 inches. In this particular embodiment of the invention, the rod 26 also has a diameter of 0.188 inches.

It should be understood that the foregoing specific dimensions for the portions 76 and 78 of the opening 36, the block section 68, and the rod 26 have been set forth herein only for purposes of clarity of description. It is contemplated that the opening 36 and rod 26 could have different dimensions if desired. In fact, it is contemplated that the opening 36 could be constructed with a substantially different configuration than the configuration illustrated in FIG. 4. In addition, the block section 68 may have a different shape to prevent interference with anatomic structures.

In another embodiment of the connector member 32, illustrated in FIGS. 7-9, the oblong opening 38 tapers to enable the axis of the fastener 20 to be positioned at an angle to the longitudinal axis of the oblong opening. The oblong opening 38 tapers from a first side 100 of the mounting section 66 to a second side 102 of the mounting section (FIGS. 8 and 9). The oblong opening 38 tapers from a relatively small opening in the first side 100 to a relatively large opening in the second side 102.

The outer end portion 40 of the fastener 20 extends through a pair of identical tapered washers 110 and 112. The tapered washer 110 engage the first side 100 of the mounting section 66 and the clamp nut 52. The tapered washer 112 engage the second side 102 of the mounting section 66 and the intermediate portion 62 of the fastener 20. Thus, the mounting section is clamped between the washers 110 and 112.

Each of the washers 110 and 112 includes a first side surface 114 and a second side surface 116 extending at an angle to the first side surface. The second side surface 116 extends at an angle of up to 15° to the first side surface 114. It is contemplated that the angle between the first and second side surfaces 114 and 116 may be of any value depending on the desired angle between the axis of the fastener 20 and the longitudinal axis of the oblong opening 38.

The axis of the fastener 20 can be positioned relative to the connector member 32 in a number of different manners. In FIG. 8 the axis of the fastener 20 extends so that the inner end portion 22 of the fastener is located beneath the rod 26. In FIG. 9 the axis of the fastener 20 extends so that the inner end portion 22 is not located beneath the connector member 32.

The opening 36 in the second embodiment of the connector member 32 includes a pair of axially spaced arcuate surfaces 120, one of which is illustrated in FIG. 7. The pair of axially spaced arcuate surfaces 120 engage portions of the rod 26 at axially spaced locations. Reference is hereby made to U.S. Pat. No. 5,024,213 to Asher et al. and assigned to the same assignee as the present invention. U.S. Pat. No. 5,024,213 describes the arcuate surfaces and their function in greater detail.

The retainer assemblies 12 and 14 can be mounted on a human spinal column 10 in any one of several different ways. Although a description of only two different ways of mounting the retainer assemblies 12 and 14 on the spinal column 10 will be set forth herein, it should be understood that the particular procedure used to mount the retainer assemblies 12 and 14 on a spinal column can be varied to suit the condition of the spinal column, the location of the retainer assemblies along the spinal column, and the extent to which vertebrae 16 are to be moved relative to each other to obtain the desired spatial relationship between the vertebrae. Therefore, the following description of methods of mounting the retainer assemblies 12 and 14 should merely be considered as exemplary of two specific preferred mounting procedures.

When the retainer assemblies 12 and 14 are to be mounted on a spinal column 10 (FIGS. 1 and 2), a plurality of fasteners 20 (FIG. 3) are connected to the vertebrae 16. This is accomplished by turning or screwing the coarse thread convolutions 58 on the inner end portions of the fasteners 20 into the vertebrae. Torque is applied to the fasteners 20 at wrenching flats (not shown) at the outer ends of the fasteners. Of course, if desired, torque could be applied to the wrenching flats at the intermediate portions 62 of the fasteners. Once the helical thread convolution 58 on the inner end portion of a fastener 20 has been turned into the bony material of a vertebra 16, in the manner shown in FIG. 3, the fastener 20 is fixedly connected with the vertebra 16 and does not move relative to the vertebra.

After the rods 26 have been bent to the desired configuration in the necessary anatomic planes, a plurality of connector members 32 are placed on each of the rods by inserting the rods through the openings 36 in the block sections 68 of the connector members. At this time, if the first embodiment of the connector members 32 are being used, the rods 26 will extend through the relatively large radius outer portions 76 of the openings 36 to enable the connector members to be freely moved axially along the rods 26. Once a number of connector members 32 corresponding to the number of vertebra to which the rods 26 are to be connected have been positioned on each of the rods, the rods are positioned along the spinal column 10 with the longitudinal central axes of the rods extending generally parallel to the longitudinal central axis of the spinal column. Thus, the rods 26 are generally located in the position shown in FIG. 1 relative to the spinal column 10.

Once the rods 26 have been positioned relative to the spinal column 10, the oblong openings 38 in the connector members 32 are positioned in engagement with the outer end portions 40 of the fasteners 20. As this is done, the clamp nuts 52 are loosely threaded onto the outer end portions of the fasteners 20 to prevent disengagement of the connector members 32 from the outer end portions of the fasteners. If the second embodiment of the connector members 32 are being used the second tapered washers 112 are placed on the outer end portions 40 of the fasteners 20 prior to positioning the oblong openings 38 in engagement with the outer end portions 40 of the fasteners 20. The first tapered washers 110 are placed on the outer end portions 40 before the clamp nuts 52 ar loosely threaded onto the outer end portions.

The spatial relationship between each of the rods 26 and the associated fasteners 20 is then adjusted while maintaining each of the fasteners stationary relative to the vertebra 16 which it engages. This adjustment can be accomplished by pulling the rod 26 and connector member 32 toward or away from a fastener 20. It could also be accomplished by pulling a fastener 20 and vertebra 16 toward or away from a rod 26. Of course, the rod 26 and fastener 20 could both be simultaneously moved relative to each other to obtain the desired spatial relationship between the rod and fastener.

Due to the presence of the oblong openings 38, the distance between the rod 26 and fastener 20 can be adjusted through a range which corresponds to the distance by which the length of the opening 38 exceeds the diameter of the outer end portion 40 of the fastener 20. Thus, the rod 26 and a fastener 20 can be moved a relatively large distance apart, as shown in FIG. 5. When this is done, the outer end portion 40 of the fastener 20 will be disposed toward the left (as viewed in FIG. 5) end of the oblong opening 38.

Similarly, the distance between the rod 26 and fastener 20 can be made relatively small as shown in FIG. 6. When this is done, the fastener will be disposed at the right (as viewed in FIG. 6) end portion of the oblong opening 38. Of course, the fastener 20 could be positioned at any location between the left and right ends of the oblong opening 38 to obtain the desired spacing between the fastener and the rod 26.

Once the fastener 20 and rod 26 have been located at a desired spatial relationship relative to each other, the clamp nuts 52 are tightened to hold the rod 26 and fastener 20 in the desired spatial relationship. Thus, if a relatively large distance wa desired between the rod 26 and fastener 20, as shown in FIG. 5, the clamp nut 52 would be tightened with the fastener toward the left (as viewed in FIG. 5) end portion of the oblong opening 38. Similarly, if a relatively small distance was desired between the rod 26 and fastener 20, the clamp nut 52 would be tightened with the fastener disposed at the right end portion of the opening 38 as shown in FIG. 6.

Once the clamp nuts 52 have been tightened to securely hold the connector members 32 against movement relative to the fasteners 20, the set screws 46 are tightened to clamp the connector member 32 against movement relative to the rod 26. Tightening the set screw 46 firmly presses the rod 26 into the relatively small diameter portion 78 of the first embodiment of the connector member 32 (FIG. 4) of the generally oval opening 36 in the manner shown in FIGS. 5 and 6. This results in the connector member 32 being firmly clamped against movement relative to the rod 26. If the second embodiment of the connector member 32 is being used tightening of the set screw 46 firmly presses the rod 26 against the axially spaced arcuate surfaces 120.

In an alternative mounting method, the rod 26 is rotated to simultaneously move one or more vertebrae relative to other vertebrae. In the alternative mounting method, the fasteners 20 are connected with the vertebra 16, in the manner illustrated in FIG. 3. The connector members 32 are then placed in engagement with the rod 26 and fasteners 20 in the manner previously described.

To move one or more of the vertebrae 16 relative to the other vertebrae in the spinal column, the clamp nuts 52 associated with the vertebrae to be moved are tightened to hold the connector member 32 against movement relative to the fasteners in the vertebrae to be moved. The clamp nuts associated with fasteners in other vertebrae of the spinal column 10 are only very loosely tightened. One of the rods 26 is then gripped with a wrench, pliers, or similar device and rotated about an axis which extends through a portion of the rod.

Due to the curved or nonlinear configuration of the rod 26 or portions of the rod, rotating the rod about an axis which extends through a portion of the rod results in other portions of the rod being displaced with a cam action. The portion of the rod which is displaced with the cam action is associated with one or more connector members 32 which have been secured by tightening of the clamp nuts 52 with fasteners 20 in the vertebrae 16 to be moved. Therefore, rotation of the rod 26 applies a sidewards force to these connector members 32 and fasteners 20 to shift one or more of the vertebrae 16 relative to other vertebrae in the spinal column 10.

Once the vertebrae 16 in the spinal column 10 have been moved to their desired spatial relationship, the clamp nuts 52 are tightened to hold the vertebrae in place. It is contemplated that it may be necessary to loosen the clamp nuts 52 for the vertebrae which were shifted by rotation of the rod 26 to provide a fine adjustment to the position of the vertebrae relative to the rod.

The present invention provides a new and improved apparatus and method for use in retaining spinal and/or pelvic elements, such as vertebrae, in a desired spatial relationship. The apparatus includes a fastener 20 having a threaded end portion 22 which engages an element, such as a vertebra in the spinal column 10. A connector assembly 30 interconnects the fastener 20 and a rod 26 which extends along the spinal column 10. The connector assembly 30 is adjustable to enable the distance between the rod 26 and the fastener 20 to be varied while the fastener remains stationary relative to the vertebra 16 to which it is connected.

To accommodate the adjustment between the rod 26 and fasteners 20, an oblong opening 38 is formed in a connector member 32 which interconnects the rod and fastener. Thus, after the connector member 32 has been placed in engagement with both the rod 26 and the fastener 20, the rod and fastener can be moved relative to each other while the connector member is maintained in engagement with both the rod and the fastener. In one specific embodiment of the invention, the oblong opening 38 which accommodates the relative movement between the rod 26 and fastener 20 is engaged by the fastener. Therefore, the connector member 32 and rod 26 can be moved together relative to the fastener 20. If desired, the positions of the vertebrae 16 can be readily adjusted relative to each other by rotating the rod 26 relative to the connector members 32 with the connector members disposed in relatively loose engagement with the rod and fasteners 20 and either none, one or more connector members in relatively tight engagement with a fastener or fasteners.

In another embodiment of the present invention the oblong opening 38 tapers from a first side 100 of the connector member 32 to a second side 102 of the connector member. A pair of identical tapered washers 110 and 112 engage on opposite sides of the connector member 32. Each of the washers 110, 112 has a first side surface 114 and a second side surface 116 extending at an angle to the first side surface. The tapered opening 38 and the tapered washers 110, 112 enable the fastener 20 to be positioned with the axis of the fastener at an angle to the longitudinal axis of the oblong opening. The angle between the axis of the fastener 20 and the longitudinal axis of the oblong opening 38 can be changed by replacing the washers 110, 112 with washers that taper at a different angle.

It should be apparent to those skilled in the art that certain modifications, changes and adaptations may be made in the present invention and that it is intended to cover all such modifications, changes and adaptations coming within the scope of the appended claims.

Asher, Marc A., Heinig, Charles F., Carson, William L., Stripggen, Walter E.

Patent Priority Assignee Title
10039577, Nov 23 2004 Bone anchor receiver with horizontal radiused tool attachment structures and parallel planar outer surfaces
10039578, Dec 16 2003 DePuy Synthes Products, Inc. Methods and devices for minimally invasive spinal fixation element placement
10058354, Jan 28 2013 JACKSON, ROGER P Pivotal bone anchor assembly with frictional shank head seating surfaces
10064658, Jun 04 2014 JACKSON, ROGER P Polyaxial bone anchor with insert guides
10064660, May 27 2005 Pivotal bone anchor assembly with interference fit insert
10076361, Feb 22 2005 NuVasive, Inc Polyaxial bone screw with spherical capture, compression and alignment and retention structures
10098666, May 27 2011 DePuy Synthes Products, Inc. Minimally invasive spinal fixation system including vertebral alignment features
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10206715, Oct 30 2001 Warsaw Orthopedic, Inc. Flexible spinal stabilization system and method
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10278740, Oct 30 2007 Pivotal bone anchor assembly with cannulated shank threaded capture connection and compression insert
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10299839, Dec 16 2003 Medos International Sárl Percutaneous access devices and bone anchor assemblies
10335200, Sep 17 2007 Pivotal bone anchor assembly with twist-in-place insert having alignment notches
10342581, Nov 16 2011 K2M, Inc. System and method for spinal correction
10349983, May 22 2003 ALPHATEC MANUFACTURING, INC Pivotal bone anchor assembly with biased bushing for pre-lock friction fit
10363070, Nov 02 2010 JACKSON, ROGER P Pivotal bone anchor assemblies with pressure inserts and snap on articulating retainers
10368920, Oct 14 2009 K2M, Inc. Occipital fixation assembly, system and method for attaching the same
10383660, May 01 2007 Soft stabilization assemblies with pretensioned cords
10426523, Jun 06 2007 K2M, Inc. Medical device and method to correct deformity
10441325, Apr 11 2006 DePuy Synthes Products, Inc. Minimally invasive fixation system
10470801, Jan 18 2007 Dynamic spinal stabilization with rod-cord longitudinal connecting members
10485588, Feb 27 2004 NuVasive, Inc. Spinal fixation tool attachment structure
10499958, May 27 2005 Pivotal bone anchor assembly with receiver having radiused tool engaging grooves, pressure insert, and closure with splay resisting threads
10561444, Sep 17 2007 Pivotal bone anchor assembly with twist-in-place insert having radially offset receiver engaging structures
10561445, Oct 30 2007 Pivotal bone anchor assembly with cannulated shank threaded capture connection and compression insert
10675062, Jun 03 2011 K2M, Inc. Spinal correction system actuators
10702311, Nov 16 2011 K2M, Inc. Spinal correction and secondary stabilization
10716596, Oct 10 2017 Spine Wave, Inc. Translational posterior cervical polyaxial screw
10722273, May 27 2005 Bone anchor assembly with twist-in-place pressure insert
10729469, Jan 09 2006 Flexible spinal stabilization assembly with spacer having off-axis core member
10729471, Nov 09 2009 EBI, LLC Multiplanar bone anchor system
10736669, Sep 15 2009 K2M, Inc. Growth modulation system
10779864, May 27 2005 Pivotal bone anchor assembly with receiving and locking members engageable by independent lock and release tooling
10792074, Jan 22 2007 Pivotal bone anchor assemly with twist-in-place friction fit insert
10799272, Oct 30 2007 Pivotal bone anchor assembly with cannulated shank threaded capture connection and compression insert
10842536, Nov 11 2008 K2M, Inc. Growth directed vertebral fixation system with distractible connector(s) and apical control
10888360, Apr 23 2010 DePuy Synthes Products, Inc. Minimally invasive instrument set, devices, and related methods
10898230, Oct 30 2001 Warsaw Orthopedic, Inc. Flexible spinal stabilization system and method
10925646, Aug 30 2010 Zimmer Spine, Inc. Polyaxial pedicle screw
10945766, Aug 30 2010 Zimmer Spine, Inc. Polyaxial pedicle screw
10952777, Apr 09 2003 Pivotal bone screw assembly with receiver having threaded open channel and lower opening
10993739, May 20 2009 DePuy Synthes Products, Inc. Patient-mounted retraction
11000314, Jun 18 2003 Cannulated polyaxial screw
11013538, Nov 16 2011 K2M, Inc. System and method for spinal correction
11051856, Oct 30 2007 Pivotal bone anchor receiver with upper tool engagement grooves and inwardly protruding insert engaging structures
11147591, Nov 10 2004 Pivotal bone anchor receiver assembly with threaded closure
11147597, Sep 30 2005 Dynamic spinal stabilization assemblies, tool set and method
11154329, Mar 26 2009 K2M, Inc. Semi-constrained anchoring system
11160581, May 27 2005 Pivotal bone anchor assembly with lock and release insert
11166751, Aug 30 2010 Zimmer Spine, Inc. Polyaxial pedicle screw
11197696, Oct 30 2007 Pivotal bone anchor assembly with threaded spherical shank head having a planar top surface
11219474, May 27 2005 Pivotal bone anchor assembly with twist-in-place insert
11229457, Jun 15 2009 JACKSON, ROGER P Pivotal bone anchor assembly with insert tool deployment
11234745, Jul 14 2005 Polyaxial bone screw assembly with partially spherical screw head and twist in place pressure insert
11246627, Oct 05 2004 Pivotal bone anchor assembly with receiver having threaded lower opening
11246628, Jun 06 2007 K2M, Inc. Medical device and method to correct deformity
11272962, Oct 14 2009 K2M, Inc. Occipital fixation assembly, system and method for attaching the same
11291480, Feb 27 2004 Spinal fixation tool attachment structure
11389213, Apr 23 2010 DePuy Synthes Products, Inc. Minimally invasive instrument set, devices, and related methods
11389214, Nov 23 2004 Spinal fixation tool set and method
11419642, Dec 16 2003 MEDOS INTERNATIONAL SARL Percutaneous access devices and bone anchor assemblies
11426207, Jun 18 2003 Pivotal bone anchor assembly with centrally open screw shank
11426216, Dec 16 2003 DePuy Synthes Products, Inc. Methods and devices for minimally invasive spinal fixation element placement
11504164, Oct 30 2007 Pivotal bone anchor assembly with horizontal tool engagement grooves and insert control surfaces
11583319, Sep 17 2007 Pivotal bone anchor assembly with twist-in-place insert
11648039, Feb 27 2004 Spinal fixation tool attachment structure
11684396, Oct 05 2004 Pivotal bone anchor assembly having a threaded shank head and a threaded receiver lower opening
11806051, Nov 09 2009 EBI, LLC Multiplanar bone anchor system
5437669, Aug 12 1993 AMEI TECHNOLOGIES INC Spinal fixation systems with bifurcated connectors
5476463, Jan 12 1994 DEPUY ACROMED, INC Spinal column retaining apparatus
5545165, Oct 08 1992 BIEDERMANN TECHNOLOGIES GMBH & CO KG Anchoring member
5545228, Oct 23 1992 Altiva Corporation Offset bone bolt
5628740, Jun 30 1995 Procter & Gamble Company, The Articulating toggle bolt bone screw
5643263, Aug 14 1995 SOFAMOR DANEK GROUP, INC Spinal implant connection assembly
5658284, Jun 30 1995 Zimmer GmbH Connection member for the connection of a resilient rod with a bone screw which can be anchored in a vertebra
5725527, Sep 10 1992 BIEDERMANN TECHNOLOGIES GMBH & CO KG Anchoring member
5743907, Jul 24 1990 DEPUY ACROMED, INC Spinal column retaining method and apparatus
5885285, Aug 14 1995 SOFAMOR DANEK GROUP, INC Spinal implant connection assembly
5891145, Jul 14 1997 DANEK MEDICAL, INC Multi-axial screw
5928233, Dec 22 1995 INTEGRA OHIO, INC Spinal fixation device with laterally attachable connectors
5941885, Oct 08 1996 SDGI Holdings, Inc Tools for use in installing osteosynthesis apparatus utilizing set screw with break-off head
5976135, Dec 18 1997 Warsaw Orthopedic, Inc Lateral connector assembly
6056753, Jul 13 1998 Set screw for use with osteosynthesis apparatus
6059786, Oct 22 1998 Set screw for medical implants
6080156, Jul 24 1990 Depuy Acromed, Inc. Spinal column retaining method and apparatus
6102913, Oct 22 1998 Removeable set screw for medical implant
6106526, Mar 15 1995 BIEDERMANN TECHNOLOGIES GMBH & CO KG Member for stabilizing cervical vertebrae
6179838, Feb 24 1998 Bone fixation arrangements and method
6187005, Sep 11 1998 Synthes USA, LLC Variable angle spinal fixation system
6193719, Sep 20 1999 Sofamor S.N.C. Threaded clamping plug for interconnecting two implants of a spinal osteosynthesis instrumentation or other implants
6224596, Jan 06 1997 Set screw for use with osteosynthesis apparatus
6248107, Mar 15 2000 Warsaw Orthopedic, Inc System for reducing the displacement of a vertebra
6280443, Jan 30 1999 U & I CORPORATION Spinal fixation system
6355038, Sep 25 1998 Perumala Corporation Multi-axis internal spinal fixation
6368321, Dec 04 2000 Lockable swivel head bone screw
6413257, May 15 1997 HOWMEDICA OSTEONICS CORP Clamping connector for spinal fixation systems
6413258, Aug 12 1999 Warsaw Orthopedic, Inc Rod-to-rod coupler
6432109, Mar 31 1998 Societe de Genie Medical S.G.M. Connection device for osteosynthesis
6454768, Dec 05 2000 Removable gripping set screw
6454772, Dec 07 2000 Set screw for medical implant with gripping side slots
6478795, Aug 29 1994 Sofamor S.N.C. Torque limiting clamping plug for osteosynthesis instrumentation
6524315, Aug 08 2000 Depuy Acromed, Inc. Orthopaedic rod/plate locking mechanism
6547790, Aug 08 2000 DEPUY ACROMED, INC Orthopaedic rod/plate locking mechanisms and surgical methods
6669697, Sep 25 1998 Perumala Corporation Self-retaining bolt for internal spinal stabilizers
6706045, May 15 1997 HOWMEDICA OSTEONICS CORP Clamping connector for spinal fixation systems
6709434, Jul 30 1998 Sofamor S.N.C. Spinal osteosynthesis device
6716214, Jun 18 2003 Polyaxial bone screw with spline capture connection
6726687, Dec 08 2000 Closure plug for open-headed medical implant
6743231, Oct 02 2000 ZIMMER SPINE, INC Temporary spinal fixation apparatuses and methods
6755830, Jul 04 2001 SOFAMOR S N C Connector for a spinal fixation member
6770075, May 17 2001 MEDICAL DEVICE ADVISORY DEVELOPMENT GROUP, LLC Spinal fixation apparatus with enhanced axial support and methods for use
6783527, Oct 30 2001 Warsaw Orthopedic, Inc Flexible spinal stabilization system and method
6869433, Jan 12 2001 DEPUY ACROMED, INC Polyaxial screw with improved locking
6893443, Jul 07 1999 Synthes USA, LLC Angle-adjustable bone screw and fixation device
6964666, Apr 09 2003 Polyaxial bone screw locking mechanism
6997927, Dec 07 2000 closure for rod receiving orthopedic implant having a pair of spaced apertures for removal
7018379, Oct 30 2001 SDGI Holdings, Inc. Flexible spinal stabilization system and method
7083622, Nov 10 2003 Artificial facet joint and method
7141051, Feb 05 2003 PIONEER SURGICAL TECHNOLOGY, INC Low profile spinal fixation system
7166108, Dec 07 2000 ZIMMER SPINE AUSTIN, INC Device for fixing a rod and a spherical symmetry screw head
7291153, Jan 11 2002 Debuy Acromed, Inc. Polyaxial screw with improved locking
7303562, Dec 24 1999 SOCIETY DE FABRICATION DE MATERIEL ORTHOPEDIQUE EN ABREGE SOFAMOR Pedicle screws with inclined channels to hold support rods
7306602, Oct 31 2002 DEPUY ACROMED, INC Snap-in washers and assemblies thereof
7314467, Apr 24 2002 MEDICAL DEVICE ADVISORY DEVELOPMENT GROUP, LLC Multi selective axis spinal fixation system
7322981, Aug 28 2003 Polyaxial bone screw with split retainer ring
7338491, Mar 22 2005 KIC VENTURES, LLC Spinal fixation locking mechanism
7476239, May 10 2005 NuVasive, Inc Polyaxial bone screw with compound articulation
7513905, Nov 03 2004 Polyaxial bone screw
7572279, Nov 10 2004 Polyaxial bone screw with discontinuous helically wound capture connection
7578833, Dec 13 2004 TRM IP MANAGEMENT LLC Bone fastener assembly for bone retention apparatus
7618440, Oct 02 2000 ZIMMER SPINE, INC Temporary spinal fixation apparatuses and methods
7625396, Nov 23 2004 Polyaxial bone screw with multi-part shank retainer
7635380, Jun 05 2007 FOUNDERS SPINE RESEARCH LLC Bone anchor with a compressor element for receiving a rod for a dynamic stabilization and motion preservation spinal implantation system and method
7648522, Sep 26 2003 STRYKER EUROPEAN HOLDINGS III, LLC Bone fixation assembly and method
7662175, Jun 18 2003 Upload shank swivel head bone screw spinal implant
7678112, Apr 26 2005 Warsaw Orthopedic, Inc Open dorsal adjusting connector
7704270, Dec 22 2004 STRYKER EUROPEAN HOLDINGS III, LLC Variable offset connectors and bone fixation methods
7708764, Nov 10 2003 Method for creating an artificial facet
7736380, Dec 21 2004 RHAUSLER, INC Cervical plate system
7766911, Jul 05 2002 Theken Spine, LLC Fixed and variable locking fixation assembly
7766915, Feb 27 2004 Dynamic fixation assemblies with inner core and outer coil-like member
7766945, Aug 10 2004 ZIMMER BIOMET SPINE, INC Screw and rod fixation system
7776067, May 27 2005 Polyaxial bone screw with shank articulation pressure insert and method
7780666, Jul 05 2002 Theken Spine, LLC Fixed and variable locking fixation assembly
7785327, Jul 05 2002 Theken Spine, LLC Fixed and variable locking fixation assembly
7785353, Feb 02 2005 Syberspine Limited Integral, articulated, pedicle screw and longitudinal member for spinal osteosynthesis
7789896, Feb 22 2005 Polyaxial bone screw assembly
7811310, May 04 2005 KIC VENTURES, LLC Multistage spinal fixation locking mechanism
7828826, Oct 30 2001 Warsaw Orthopedic, Inc Flexible spinal stabilization system and method
7833250, Nov 10 2004 Polyaxial bone screw with helically wound capture connection
7842073, Apr 18 2002 AESCULAP II, INC Screw and rod fixation assembly and device
7846187, Dec 07 2000 Closure plug for open headed medical implant
7854752, Aug 09 2004 Theken Spine, LLC System and method for dynamic skeletal stabilization
7875065, Nov 23 2004 Polyaxial bone screw with multi-part shank retainer and pressure insert
7901437, Jan 26 2007 Dynamic stabilization member with molded connection
7942900, Jun 05 2007 SPARTEK MEDICAL, INC Shaped horizontal rod for dynamic stabilization and motion preservation spinal implantation system and method
7942909, Aug 13 2009 Ortho Innovations, LLC Thread-thru polyaxial pedicle screw system
7942910, May 16 2007 Ortho Innovations, LLC Polyaxial bone screw
7942911, May 16 2007 Ortho Innovations, LLC Polyaxial bone screw
7947065, Nov 14 2008 Ortho Innovations, LLC Locking polyaxial ball and socket fastener
7951170, May 31 2007 Dynamic stabilization connecting member with pre-tensioned solid core
7951173, May 16 2007 Ortho Innovations, LLC Pedicle screw implant system
7955358, Sep 19 2005 ZIMMER BIOMET SPINE, INC Bone screw apparatus, system and method
7963978, Jun 05 2007 SPARTEK MEDICAL, INC Method for implanting a deflection rod system and customizing the deflection rod system for a particular patient need for dynamic stabilization and motion preservation spinal implantation system
7967850, Jun 18 2003 Polyaxial bone anchor with helical capture connection, insert and dual locking assembly
7985243, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system with mount for a dynamic stabilization and motion preservation spinal implantation system and method
7993372, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system with a shielded deflection rod system and method
8002800, Jun 05 2007 SPARTEK MEDICAL, INC Horizontal rod with a mounting platform for a dynamic stabilization and motion preservation spinal implantation system and method
8002803, Jun 05 2007 SPARTEK MEDICAL, INC ; SPARTEK MEDICAL, INC , A CORP OF DELAWARE Deflection rod system for a spine implant including an inner rod and an outer shell and method
8007518, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing component having a deflectable post and method for dynamic stabilization of the spine
8012175, Jun 05 2007 SPARTEK MEDICAL, INC Multi-directional deflection profile for a dynamic stabilization and motion preservation spinal implantation system and method
8012177, Feb 12 2007 Dynamic stabilization assembly with frusto-conical connection
8012181, Feb 26 2008 SPARTEK MEDICAL, INC Modular in-line deflection rod and bone anchor system and method for dynamic stabilization of the spine
8016861, Feb 26 2008 SPARTEK MEDICAL, INC Versatile polyaxial connector assembly and method for dynamic stabilization of the spine
8021396, Feb 26 2008 SPARTEK MEDICAL, INC Configurable dynamic spinal rod and method for dynamic stabilization of the spine
8025681, Mar 29 2006 Theken Spine, LLC Dynamic motion spinal stabilization system
8034087, Nov 03 2004 Polyaxial bone screw
8043337, Jun 14 2006 SPARTEK MEDICAL, INC Implant system and method to treat degenerative disorders of the spine
8048113, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system with a non-linear deflection to load characteristic for a dynamic stabilization and motion preservation spinal implantation system and method
8048115, Feb 26 2008 SPARTEK MEDICAL, INC Surgical tool and method for implantation of a dynamic bone anchor
8048121, Jun 05 2007 SPARTEK MEDICAL, INC Spine implant with a defelction rod system anchored to a bone anchor and method
8048122, Jun 05 2007 SPARTEK MEDICAL, INC Spine implant with a dual deflection rod system including a deflection limiting sheild associated with a bone screw and method
8048123, Jun 05 2007 SPARTEK MEDICAL, INC Spine implant with a deflection rod system and connecting linkages and method
8048125, Feb 26 2008 SPARTEK MEDICAL, INC Versatile offset polyaxial connector and method for dynamic stabilization of the spine
8048128, Jun 05 2007 SPARTEK MEDICAL, INC Revision system and method for a dynamic stabilization and motion preservation spinal implantation system and method
8052721, Jun 05 2007 SPARTEK MEDICAL, INC Multi-dimensional horizontal rod for a dynamic stabilization and motion preservation spinal implantation system and method
8052722, Jun 05 2007 SPARTEK MEDICAL, INC Dual deflection rod system for a dynamic stabilization and motion preservation spinal implantation system and method
8052724, Jun 18 2003 Upload shank swivel head bone screw spinal implant
8057514, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system dimensioned for deflection to a load characteristic for dynamic stabilization and motion preservation spinal implantation system and method
8057515, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing anchor having a deflectable post and centering spring and method for dynamic stabilization of the spine
8057517, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing component having a deflectable post and centering spring and method for dynamic stabilization of the spine
8066739, Feb 27 2004 NuVasive, Inc Tool system for dynamic spinal implants
8066747, Jun 05 2007 SPARTEK MEDICAL, INC Implantation method for a dynamic stabilization and motion preservation spinal implantation system and method
8070774, Jun 05 2007 SPARTEK MEDICAL, INC Reinforced bone anchor for a dynamic stabilization and motion preservation spinal implantation system and method
8070775, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system for a dynamic stabilization and motion preservation spinal implantation system and method
8070776, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system for use with a vertebral fusion implant for dynamic stabilization and motion preservation spinal implantation system and method
8070780, Jun 05 2007 SPARTEK MEDICAL, INC Bone anchor with a yoke-shaped anchor head for a dynamic stabilization and motion preservation spinal implantation system and method
8075603, Nov 14 2008 Ortho Innovations, LLC Locking polyaxial ball and socket fastener
8080039, Jun 05 2007 SPARTEK MEDICAL, INC Anchor system for a spine implantation system that can move about three axes
8083772, Feb 26 2008 SPARTEK MEDICAL, INC Dynamic spinal rod assembly and method for dynamic stabilization of the spine
8083775, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a natural center of rotation and method for dynamic stabilization of the spine
8092500, May 01 2007 Dynamic stabilization connecting member with floating core, compression spacer and over-mold
8092501, Feb 26 2008 FOUNDERS SPINE RESEARCH LLC Dynamic spinal rod and method for dynamic stabilization of the spine
8092502, Apr 09 2003 Polyaxial bone screw with uploaded threaded shank and method of assembly and use
8097024, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a deflectable post and method for stabilization of the spine
8100915, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
8105356, Jun 05 2007 SPARTEK MEDICAL, INC Bone anchor with a curved mounting element for a dynamic stabilization and motion preservation spinal implantation system and method
8105359, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system for a dynamic stabilization and motion preservation spinal implantation system and method
8105368, Sep 30 2005 Dynamic stabilization connecting member with slitted core and outer sleeve
8109970, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system with a deflection contouring shield for a spine implant and method
8114130, Jun 05 2007 SPARTEK MEDICAL, INC Deflection rod system for spine implant with end connectors and method
8114134, Feb 26 2008 SPARTEK MEDICAL, INC Spinal prosthesis having a three bar linkage for motion preservation and dynamic stabilization of the spine
8114158, Aug 03 2004 K2M, INC Facet device and method
8118842, Jun 05 2007 SPARTEK MEDICAL, INC Multi-level dynamic stabilization and motion preservation spinal implantation system and method
8128667, Sep 06 2002 Anti-splay medical implant closure with multi-surface removal aperture
8137386, Aug 28 2003 Polyaxial bone screw apparatus
8142477, Jan 21 2010 Warsaw Orthopedic, Inc.; Warsaw Orthopedic, Inc Retaining system
8142478, Nov 10 2003 Artificial facet joint and method
8142480, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system with horizontal deflection rod and articulating vertical rods
8142483, Oct 30 2001 Warsaw Orthopedic, Inc. Flexible spinal stabilization system and method
8147520, Jun 05 2007 SPARTEK MEDICAL, INC Horizontally loaded dynamic stabilization and motion preservation spinal implantation system and method
8152810, Nov 23 2004 NuVasive, Inc Spinal fixation tool set and method
8162948, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
8162979, Jun 06 2007 K2M, INC Medical device and method to correct deformity
8162987, Jun 05 2007 SPARTEK MEDICAL, INC Modular spine treatment kit for dynamic stabilization and motion preservation of the spine
8172881, Jun 05 2007 SPARTEK MEDICAL, INC , A CORP OF DE Dynamic stabilization and motion preservation spinal implantation system and method with a deflection rod mounted in close proximity to a mounting rod
8172882, Jun 14 2006 SPARTEK MEDICAL, INC Implant system and method to treat degenerative disorders of the spine
8177815, Jun 05 2007 SPARTEK MEDICAL, INC Super-elastic deflection rod for a dynamic stabilization and motion preservation spinal implantation system and method
8177823, Jun 30 2005 DePuy Spine SARL Orthopedic clamping hook assembly
8182515, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system and method
8182516, Jun 05 2007 SPARTEK MEDICAL, INC Rod capture mechanism for dynamic stabilization and motion preservation spinal implantation system and method
8192469, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system and method with a deflection rod
8197518, May 16 2007 Ortho Innovations, LLC Thread-thru polyaxial pedicle screw system
8211150, Jun 05 2007 SPARTEK MEDICAL, INC Dynamic stabilization and motion preservation spinal implantation system and method
8211155, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a durable compliant member and method for dynamic stabilization of the spine
8216281, Dec 03 2008 FOUNDERS SPINE RESEARCH LLC Low profile spinal prosthesis incorporating a bone anchor having a deflectable post and a compound spinal rod
8241333, Aug 28 2003 Polyaxial bone screw with split retainer ring
8257396, Jun 18 2003 Polyaxial bone screw with shank-retainer inset capture
8257397, Dec 02 2009 FOUNDERS SPINE RESEARCH LLC Low profile spinal prosthesis incorporating a bone anchor having a deflectable post and a compound spinal rod
8257398, Jun 18 2003 Polyaxial bone screw with cam capture
8257402, Sep 06 2002 Closure for rod receiving orthopedic implant having left handed thread removal
8267979, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a deflectable post and axial spring and method for dynamic stabilization of the spine
8273089, Nov 23 2004 NuVasive, Inc Spinal fixation tool set and method
8273109, Sep 06 2002 Helical wound mechanically interlocking mating guide and advancement structure
8282673, Sep 06 2002 Anti-splay medical implant closure with multi-surface removal aperture
8292892, May 13 2009 NuVasive, Inc Orthopedic implant rod reduction tool set and method
8292926, Sep 30 2005 Dynamic stabilization connecting member with elastic core and outer sleeve
8298267, Jun 05 2007 SPARTEK MEDICAL, INC Spine implant with a deflection rod system including a deflection limiting shield associated with a bone screw and method
8308775, Oct 14 2008 MEDICREA INternational Method for rotating a vertebra or vertebrae
8308782, Nov 23 2004 Bone anchors with longitudinal connecting member engaging inserts and closures for fixation and optional angulation
8317836, Jun 05 2007 Spartek Medical, Inc. Bone anchor for receiving a rod for stabilization and motion preservation spinal implantation system and method
8333792, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a deflectable post and method for dynamic stabilization of the spine
8337536, Feb 26 2008 SPARTEK MEDICAL, INC Load-sharing bone anchor having a deflectable post with a compliant ring and method for stabilization of the spine
8348952, Jan 26 2006 DePuy International Ltd System and method for cooling a spinal correction device comprising a shape memory material for corrective spinal surgery
8353932, Sep 30 2005 Polyaxial bone anchor assembly with one-piece closure, pressure insert and plastic elongate member
8357182, Mar 26 2009 K2M, INC Alignment system with longitudinal support features
8357183, Mar 26 2009 K2M, INC Semi-constrained anchoring system
8361120, Jul 27 2006 Depuy Synthes Products, LLC Outrigger
8366745, May 01 2007 Dynamic stabilization assembly having pre-compressed spacers with differential displacements
8366753, Jun 18 2003 Polyaxial bone screw assembly with fixed retaining structure
8372122, Dec 02 2009 SPARTEK MEDICAL, INC Low profile spinal prosthesis incorporating a bone anchor having a deflectable post and a compound spinal rod
8377067, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
8377100, Dec 07 2000 Closure for open-headed medical implant
8377102, Jun 18 2003 Polyaxial bone anchor with spline capture connection and lower pressure insert
8394127, Dec 02 2009 Spartek Medical, Inc. Low profile spinal prosthesis incorporating a bone anchor having a deflectable post and a compound spinal rod
8394133, Feb 27 2004 Dynamic fixation assemblies with inner core and outer coil-like member
8398682, Jun 18 2003 JACKSON, ROGER P AN INDIVIDUAL Polyaxial bone screw assembly
8409255, Apr 18 2002 AESCULAP IMPLANT SYSTEMS, LLC Screw and rod fixation assembly and device
8414614, Oct 22 2005 DePuy International Ltd Implant kit for supporting a spinal column
8425563, Jan 13 2006 DePuy International Ltd Spinal rod support kit
8430914, Oct 24 2007 Depuy Synthes Products, LLC Assembly for orthopaedic surgery
8430916, Feb 07 2012 SPARTEK MEDICAL, INC Spinal rod connectors, methods of use, and spinal prosthesis incorporating spinal rod connectors
8439958, Nov 03 2004 Polyaxial bone screw
8444677, Oct 10 2004 Polyaxial bone screw with helically wound capture connection
8444681, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank, friction fit retainer and winged insert
8465530, Nov 14 2008 Ortho Innovations, LLC Locking polyaxial ball and socket fastener
8475498, Jan 18 2007 Dynamic stabilization connecting member with cord connection
8475501, Aug 28 2003 Polyaxial bone screw with split retainer ring
8506599, Feb 12 2007 Dynamic stabilization assembly with frusto-conical connection
8518085, Jun 10 2010 FOUNDERS SPINE RESEARCH LLC Adaptive spinal rod and methods for stabilization of the spine
8518086, Mar 26 2009 K2M, INC Semi-constrained anchoring system
8540753, Apr 09 2003 Polyaxial bone screw with uploaded threaded shank and method of assembly and use
8556938, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with non-pivotable retainer and pop-on shank, some with friction fit
8568451, Jun 05 2007 FOUNDERS SPINE RESEARCH LLC Bone anchor for receiving a rod for stabilization and motion preservation spinal implantation system and method
8591515, Nov 23 2004 Spinal fixation tool set and method
8591552, Sep 06 2002 Anti-splay medical implant closure with multi-surface removal aperture
8591560, Sep 30 2005 Dynamic stabilization connecting member with elastic core and outer sleeve
8613760, Sep 30 2005 Dynamic stabilization connecting member with slitted core and outer sleeve
8636769, Jun 18 2003 Polyaxial bone screw with shank-retainer insert capture
8636777, Nov 10 2004 Polyaxial bone screw with discontinuous helically wound capture connection
8696711, Sep 30 2005 Polyaxial bone anchor assembly with one-piece closure, pressure insert and plastic elongate member
8702755, Aug 11 2006 Globus Medical, Inc Angled washer polyaxial connection for dynamic spine prosthesis
8814911, Jun 18 2003 Polyaxial bone screw with cam connection and lock and release insert
8814913, Sep 06 2002 Helical guide and advancement flange with break-off extensions
8828058, Nov 11 2008 K2M, INC Growth directed vertebral fixation system with distractible connector(s) and apical control
8840652, Nov 23 2004 Bone anchors with longitudinal connecting member engaging inserts and closures for fixation and optional angulation
8845649, Sep 24 2004 Spinal fixation tool set and method for rod reduction and fastener insertion
8852239, Feb 15 2013 JACKSON, ROGER P Sagittal angle screw with integral shank and receiver
8870928, Sep 06 2002 Helical guide and advancement flange with radially loaded lip
8876868, Sep 06 2002 Helical guide and advancement flange with radially loaded lip
8894657, Feb 27 2004 NuVasive, Inc Tool system for dynamic spinal implants
8900272, Feb 27 2004 Dynamic fixation assemblies with inner core and outer coil-like member
8911477, Oct 23 2007 Dynamic stabilization member with end plate support and cable core extension
8911478, Nov 21 2012 JACKSON, ROGER P Splay control closure for open bone anchor
8911479, Jan 10 2012 JACKSON, ROGER P Multi-start closures for open implants
8920472, Nov 16 2011 K2M, INC Spinal correction and secondary stabilization
8926670, Jun 18 2003 Polyaxial bone screw assembly
8926672, Nov 10 2004 JACKSON, ROGER P Splay control closure for open bone anchor
8936623, Jun 18 2003 Polyaxial bone screw assembly
8979904, May 01 2007 JACKSON, ROGER P Connecting member with tensioned cord, low profile rigid sleeve and spacer with torsion control
8998959, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchors with pop-on shank, fully constrained friction fit retainer and lock and release insert
8998960, Nov 10 2004 Polyaxial bone screw with helically wound capture connection
8998961, Feb 26 2009 ZIMMER BIOMET SPINE, INC Spinal rod connector and methods
9011491, Aug 03 2004 K2M, INC Facet device and method
9011495, Nov 09 2009 EBI, LLC Multiplanar bone anchor system
9044272, Nov 09 2009 ZIMMER BIOMET SPINE, INC Multiplanar bone anchor system
9050139, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
9050148, Feb 27 2004 NuVasive, Inc Spinal fixation tool attachment structure
9055978, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
9101404, Jan 26 2007 Dynamic stabilization connecting member with molded connection
9113959, Nov 16 2011 K2M, INC Spinal correction and secondary stabilization
9119679, Aug 11 2006 Globus Medical, Inc Angled washer polyaxial connection for dynamic spine prosthesis
9144444, Jun 18 2003 Polyaxial bone anchor with helical capture connection, insert and dual locking assembly
9168069, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank and winged insert with lower skirt for engaging a friction fit retainer
9168071, Sep 15 2009 K2M, INC Growth modulation system
9173681, Mar 26 2009 K2M, INC Alignment system with longitudinal support features
9198695, Aug 30 2010 ZIMMER BIOMET SPINE, INC Polyaxial pedicle screw
9211150, Nov 23 2004 NuVasive, Inc Spinal fixation tool set and method
9216039, Feb 27 2004 NuVasive, Inc Dynamic spinal stabilization assemblies, tool set and method
9216041, Jun 15 2009 JACKSON, ROGER P Spinal connecting members with tensioned cords and rigid sleeves for engaging compression inserts
9308027, May 27 2005 Polyaxial bone screw with shank articulation pressure insert and method
9314274, May 27 2011 DEPUY SYNTHES PRODUCTS, INC Minimally invasive spinal fixation system including vertebral alignment features
9320545, Nov 23 2004 Polyaxial bone screw with multi-part shank retainer and pressure insert
9333009, Jun 03 2011 K2M, INC Spinal correction system actuators
9358044, Mar 26 2009 K2M, INC Semi-constrained anchoring system
9358045, Oct 30 2001 Warsaw Orthopedic, Inc. Flexible spinal stabilization system and method
9393047, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank and friction fit retainer with low profile edge lock
9402663, Apr 23 2010 DePuy Synthes Products, Inc. Minimally invasive instrument set, devices and related methods
9408638, Jun 03 2011 K2M, Inc. Spinal correction system actuators
9414863, Feb 22 2005 Polyaxial bone screw with spherical capture, compression insert and alignment and retention structures
9439683, Jan 26 2007 Dynamic stabilization member with molded connection
9451987, Nov 16 2011 K2M, INC System and method for spinal correction
9451989, Jan 18 2007 Dynamic stabilization members with elastic and inelastic sections
9451993, Jan 09 2014 JACKSON, ROGER P Bi-radial pop-on cervical bone anchor
9451997, Aug 03 2004 K2M, INC Facet device and method
9453526, Apr 30 2013 DEGEN MEDICAL, INC Bottom-loading anchor assembly
9456853, May 27 2005 Polyaxial bone screw with shank articulation pressure insert and method
9468468, Nov 16 2011 K2M, INC Transverse connector for spinal stabilization system
9468469, Sep 17 2013 K2M, INC Transverse coupler adjuster spinal correction systems and methods
9468471, Sep 17 2013 K2M, INC Transverse coupler adjuster spinal correction systems and methods
9480517, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank, shank, friction fit retainer, winged insert and low profile edge lock
9498262, Apr 11 2006 DEPUY SYNTHES PRODUCTS, INC Minimally invasive fixation system
9504496, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank, friction fit retainer and winged insert
9510865, Nov 11 2008 K2M, INC Growth directed vertebral fixation system with distractible connector(s) and apical control
9522021, Nov 23 2004 JACKSON, ROGER P Polyaxial bone anchor with retainer with notch for mono-axial motion
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9597119, Jun 04 2014 JACKSON, ROGER P Polyaxial bone anchor with polymer sleeve
9597122, Oct 14 2009 K2M, Inc. Occipital fixation assembly, system and method for attaching the same
9629669, Nov 23 2004 NuVasive, Inc Spinal fixation tool set and method
9636146, Jan 10 2012 JACKSON, ROGER P Multi-start closures for open implants
9636148, Aug 30 2010 ZIMMER BIOMET SPINE, INC Polyaxial pedicle screw
9636151, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
9662143, Feb 27 2004 Dynamic fixation assemblies with inner core and outer coil-like member
9662151, Feb 27 2004 NuVasive, Inc Orthopedic implant rod reduction tool set and method
9668771, Jun 15 2009 Soft stabilization assemblies with off-set connector
9717533, Dec 12 2013 JACKSON, ROGER P Bone anchor closure pivot-splay control flange form guide and advancement structure
9717534, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank and friction fit retainer with low profile edge lock
9743957, Nov 10 2004 Polyaxial bone screw with shank articulation pressure insert and method
9757157, Nov 16 2011 K2M, Inc. System and method for spinal correction
9763701, Nov 09 2009 ZIMMER BIOMET SPINE, INC Multiplanar bone anchor system
9770265, Nov 21 2012 JACKSON, ROGER P Splay control closure for open bone anchor
9788866, May 27 2005 Polyaxial bone screw with shank articulation pressure insert and method
9801665, May 27 2005 Polyaxial bone screw with shank articulation pressure insert and method
9808281, May 20 2009 DEPUY SYNTHES PRODUCTS, INC Patient-mounted retraction
9808292, Jun 18 2003 Cannulated polyaxial screw
9820780, Sep 30 2015 SPINAL ELEMENTS, INC Angled offset tulip assembly
9827017, Nov 16 2011 K2M, Inc. Spinal correction and secondary stabilization
9827022, Sep 15 2009 K2M, LLC Growth modulation system
9848917, Jun 06 2007 K2M, INC Medical device and method to correct deformity
9895168, Jun 03 2011 K2M, Inc. Spinal correction system actuators
9907574, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchors with pop-on shank, friction fit fully restrained retainer, insert and tool receiving features
9918745, Jun 15 2009 JACKSON, ROGER P Polyaxial bone anchor with pop-on shank and winged insert with friction fit compressive collet
9918751, Feb 27 2004 NuVasive, Inc Tool system for dynamic spinal implants
9980753, Jun 15 2009 JACKSON, ROGER P pivotal anchor with snap-in-place insert having rotation blocking extensions
D643925, Aug 04 2006 ZIMMER BIOMET SPINE, INC Spinal rod connector
RE39035, Nov 18 1994 HOWMEDICA OSTEONICS CORP Universal coupler for spinal fixation
RE46115, Sep 19 2005 ZIMMER BIOMET SPINE, INC Bone screw apparatus, system and method
RE46371, Sep 26 2003 STRYKER EUROPEAN HOLDINGS III, LLC Bone fixation assembly and method
RE46431, Jun 18 2003 Polyaxial bone anchor with helical capture connection, insert and dual locking assembly
RE47551, Feb 22 2005 NuVasive, Inc Polyaxial bone screw with spherical capture, compression insert and alignment and retention structures
Patent Priority Assignee Title
4433676, Apr 06 1981 Self-adjusting spinal scoliosis fusion hook
5002542, Oct 30 1989 Synthes USA, LLC Pedicle screw clamp
5133717, Feb 08 1990 DANEK GROUP, INC Sacral support saddle for a spinal osteosynthesis device
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Feb 14 1992ASHER, MARC A ACROMED CORPORATION A CORPORATION OF OHASSIGNMENT OF ASSIGNORS INTEREST 0060400914 pdf
Feb 18 1992HEINIG, CHARLES F ACROMED CORPORATION A CORPORATION OF OHASSIGNMENT OF ASSIGNORS INTEREST 0060400914 pdf
Feb 20 1992AcroMed Corporation(assignment on the face of the patent)
Feb 20 1992STRIPPGER, WALTER E ACROMED CORPORATION A CORPORATION OF OHASSIGNMENT OF ASSIGNORS INTEREST 0060400914 pdf
Feb 21 1992CARSON, WILLIAM L ACROMED CORPORATION A CORPORATION OF OHASSIGNMENT OF ASSIGNORS INTEREST 0060400914 pdf
Jun 03 1998AcroMed CorporationDEPUY MOTECH ACROMED, INC CHANGE OF NAME SEE DOCUMENT FOR DETAILS 0097110475 pdf
Sep 23 1998DEPUY MOTECH ACROMED, INC DEPUY ACROMED, INC CHANGE OF NAME SEE DOCUMENT FOR DETAILS 0097900203 pdf
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